机器学习模型使用中年韩国成年人的多方面的生活方式预测生活质量:一个横截面研究
Junho Kim1, Kyoungsik Jeong1, Siwoo Lee1
1KM Data Division, Korea Institute of Oriental Medicine, Daejeon, Republic of Korea.
BMC public health
|January 11, 2024
概括
机器学习可以准确地预测中年人的生活质量 (QOL). 压力和睡眠质量是改善质量生活的关键因素,强调了有针对性的健康计划的需要.
科学领域:
- 公共卫生 公共卫生
- 老年学是指老年学的学科.
- 医疗信息学 医疗信息学
背景情况:
- 人口老龄化和医疗保健的进步推动了人们对健康老龄化和生活质量 (QOL) 的兴趣.
- 中年成人是以质量生活为重点的公共卫生倡议的关键人口群体.
研究的目的:
- 在中年韩国成年人中开发一个最佳的机器学习预测模型来预测QOL.
- 在这个人口群体中确定QOL的关键预测因素.
主要方法:
- 利用基于社区的韩国人口数据 (N=4,048,年龄在30-55岁之间).
- 采用七个机器学习算法,包括随机森林,来预测QOL (通过SF-12进行评估).
- 使用合成少数人过量抽样技术 (SMOTE) 解决了数据不平衡,并确定了特征的重要性.
主要成果:
- 使用SMOTE的随机森林算法显示了总QOL (AUC=0.822),PCS (AUC=0.770) 和MCS (AUC=0.786) 的最高预测性能.
- 在不同指数中,压力和睡眠质量成为QOL最重要的预测因素.
- SMOTE提高了模型性能,最高可达0.111 AUC.
结论:
- 建议对中年成年人进行多学科的健康管理计划,以提高QOL.
- 管理压力和睡眠质量对于改善这一群体的整体质量生活至关重要.
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